Dataset or other product:

Cellpose training data and scripts from "Inhibition of CERS1 in aging skeletal muscle exacerbates age-related muscle impairments"

cris.legacyId

309338

cris.virtual.author-scopus

7101942868

cris.virtual.department

LISP

cris.virtual.department

EDMS-ENS

cris.virtual.orcid

0000-0002-5065-5393

cris.virtual.orcid

0000-0002-7100-3749

cris.virtual.sciperId

185233

cris.virtual.sciperId

159115

cris.virtual.sciperId

292590

cris.virtual.unitManager

Auwerx, Johan

cris.virtual.unitManager

Stengel, Valérie

cris.virtual.unitManager

Suter, David

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fe79d0c6-58a9-4cad-892e-a4f374901e67

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a80b13ef-e524-4b5b-90bd-e47cdc2e009c

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998a6466-7dda-43a7-9e72-f390ee8ae527

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fe79d0c6-58a9-4cad-892e-a4f374901e67

cris.virtualsource.department

a80b13ef-e524-4b5b-90bd-e47cdc2e009c

cris.virtualsource.department

998a6466-7dda-43a7-9e72-f390ee8ae527

cris.virtualsource.orcid

fe79d0c6-58a9-4cad-892e-a4f374901e67

cris.virtualsource.orcid

a80b13ef-e524-4b5b-90bd-e47cdc2e009c

cris.virtualsource.orcid

998a6466-7dda-43a7-9e72-f390ee8ae527

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fe79d0c6-58a9-4cad-892e-a4f374901e67

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a80b13ef-e524-4b5b-90bd-e47cdc2e009c

cris.virtualsource.rid

998a6466-7dda-43a7-9e72-f390ee8ae527

cris.virtualsource.sciperId

fe79d0c6-58a9-4cad-892e-a4f374901e67

cris.virtualsource.sciperId

a80b13ef-e524-4b5b-90bd-e47cdc2e009c

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998a6466-7dda-43a7-9e72-f390ee8ae527

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82d4d07b-de90-4d3f-8a5a-78e81b179779

cris.virtualsource.unitManager

82d4d07b-de90-4d3f-8a5a-78e81b179779

cris.virtualsource.unitManager

553c563f-68da-49ff-9879-caaa39a150a6

datacite.relatedIdentifier

https://infoscience.epfl.ch/record/309353

datacite.relatedIdentifier

https://zenodo.org/records/7041136

datacite.relationType

IsSupplementTo

datacite.relationType

IsNewVersionOf

datacite.rights

metadata-only

dc.contributor.author

Wohlwend, Martin

dc.contributor.author

Burri, Olivier

dc.contributor.author

Auwerx, Johan

dc.date.accessioned

2024-03-04T13:47:01

dc.date.available

2024-03-04T13:47:01

dc.date.created

2024-03-04

dc.date.issued

2024

dc.date.modified

2025-04-03T00:22:47.179494Z

dc.description.abstract

This Workflow contains all the material necessary to reproduce the results of the QuPath analysis performed in the paper  "Inhibition of CERS1 in aging skeletal muscle exacerbates age-related muscle impairments" Inside this workflow and dataset, you will find the following folders QuPath Training Project: A QuPath 0.3.2 project containing all the manual annotations (ground truths) used to train the cellpose model, as well as the script to start the training QuPath Demo Project: A QuPath 0.3.2 project containing an example image that can be segmented using cellpose, followed by the classification of the CD45 expressing fibers Training Images and Demo Images: The raw whole slide scanner 20x images needed by the above QuPath projects Model: The fodler contianing the trained cellpose model Cellpose Training Folder: The exported raw and ground truth images that the above cellpose model was trained on Scripts: The QuPath scripts, also located in their respective QuPath projects, that were created for this whole workflow QC: A Jupyter notebook, based on ZeroCostDL4Mic that computes quality metrics in order to assess the performance of the trained cellpose model. The folder also contains the resulting metrics. Installation and Use If you are going to use the QuPath projects, you need a local QuPath Installation https://qupath.github.io/ that is configured to run the QuPath Cellpose Extension https://github.com/BIOP/qupath-extension-cellpose as well as a working Cellpose installation https://github.com/MouseLand/cellpose Instructions for installation are available from the links above. After that, you should be able to open the QuPath project, navigate to the "Automate > Project scripts" menu and locate the script you wish to run.

dc.description.version

1

dc.identifier.acoua

dd43edd2-87fb-4384-b01e-4fed6bc17c07

dc.identifier.doi

10.5281/zenodo.7041137

dc.identifier.uri

https://infoscience.epfl.ch/handle/20.500.14299/205766

dc.language.iso

en

dc.publisher

Zenodo

dc.relation.grantno

ERC-AdG-787702

dc.relation.grantno

31003A_179435

dc.subject

cellpose

dc.subject

deep learning

dc.subject

muscle fiber

dc.subject

segmentation

dc.subject

qupath

dc.title

Cellpose training data and scripts from "Inhibition of CERS1 in aging skeletal muscle exacerbates age-related muscle impairments"

dc.type

dataset

dspace.entity.type

Product

dspace.legacy.oai-identifier

oai:infoscience.epfl.ch:309338

epfl.curator.email

francois.schmitt@epfl.ch

epfl.lastmodified.email

xiaoxu.li@epfl.ch

epfl.legacy.itemtype

Datasets

epfl.legacy.submissionform

DATASET

epfl.oai.currentset

datasets

epfl.writtenAt

EPFL

oairecerif.funder

EU funding

oairecerif.funder

FNS

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